CONTAINER FOR BIOLOGICAL SAMPLES
20220258153 · 2022-08-18
Assignee
Inventors
- Marina Caubet Canals (Glenview, IL, US)
- Laura Martin Sanchez (Glenview, IL, US)
- Montserrat Lacoma Martinez (Glenview, IL, US)
- Aliex Heribert Fortuny Cuadra (Glenview, IL, US)
Cpc classification
B01L2200/082
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/168
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/16
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/049
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/185
PERFORMING OPERATIONS; TRANSPORTING
B65D81/3211
PERFORMING OPERATIONS; TRANSPORTING
B01L3/5635
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/026
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A container assembly is provided for handling a biological sample that includes a first receptacle (1) and a second receptacle (2), each one configured to receive and contain a fluid; a coupling member (6), adapted to operably couple the first receptacle and the second receptacle, so as to provide a sealed fluid passage between the first and second receptacle; at least one self-sealing dispensing valve (4), operably mounted within said fluid passage of the coupling member, adapted to allow bi-directional fluid flow at a predetermined fluid pressure, and at least one barrier member (9), operably mounted within the fluid passage of the coupling member at an output of the first receptacle, configured to prevent solids of a predetermined size to pass from the first receptacle into the second receptacle.
Claims
1. A container assembly for handling a biological sample, comprising: a first receptacle (1) and a second receptacle (2), each one configured to receive and contain a fluid; a coupling member (6), adapted to operably couple said first receptacle and said second receptacle, so as to provide a sealed fluid passage between said first and second receptacle; at least one self-sealing dispensing valve (4), operably mounted within said fluid passage of said coupling member, adapted to allow bi-directional fluid flow at a predetermined fluid pressure, and at least one barrier member (9), operably mounted within said fluid passage of said coupling member at an output of said first receptacle, configured to prevent solids of a predetermined size to pass from said first receptacle into said second receptacle.
2. The container assembly according to claim 1, wherein said barrier member further comprises a protrusion (11) extending from a surface facing said first receptacle that is adapted to receive and position the biological sample when placing the biological sample onto said at least one barrier member.
3. The container assembly according to claim 2, wherein said protrusion has a sharp-edged substantially triangular cross-section.
4. The container assembly according to claim 1, wherein said first receptacle and said second receptacle are at least partially made of a resiliently deformable material.
5. The container assembly according to claim 4, wherein said resiliently deformable material is a polymer.
6. The container assembly according to claim 5, wherein said polymer is any one of polyethylene terephthalate, high-density polyethylene or polyvinyl chloride.
7. The container assembly according to claim 1, wherein any one of said first and said second receptacles is made from a transparent material.
8. The container assembly according to claim 1, wherein said coupling member comprises a threaded inner surface adapted to mountably engage with a corresponding threaded outer surface of said first and second receptacle.
9. The container assembly according to claim 1, wherein said coupling member further comprises an internal housing configured to retainingly receive said at least one self-sealing dispensing valve.
10. The container assembly according to claim 1, wherein said at least one self-sealing dispensing valve comprises a resilient membrane having at least one substantially central slit adapted to open at a predetermined fluid pressure.
11. The container assembly according to claim 10, wherein said membrane comprises at least three slits radially arranged so as to form three resilient flaps adapted to open at a predetermined fluid pressure.
12. The container assembly according to claim 1, wherein said at least one self-sealing dispensing valve is made from a resilient silicone material.
13. The container assembly according to claim 1, wherein said barrier member is a grid having a predetermined grid spacing.
14. The container assembly according to claim 2, wherein said protrusion is located adjacent to said grid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Embodiment(s) of the invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION
[0035] The described example embodiment relates to a container assembly having receptacles and a coupling member of a specific shape and design. However, the invention is not restricted to the described shapes and designs but may also use any other suitable shape/design of the receptacles, coupling and valve.
[0036] Certain terminology may be used in the following description for convenience only and is not limiting. The words ‘right’, ‘left’, ‘lower’, ‘upper’, ‘front’, ‘rear’, ‘upward’, ‘down’ and ‘downward’, ‘top’ and ‘bottom’ designate directions in the drawings to which reference is made and are with respect to the described component when assembled and mounted. The words ‘inner’, ‘inwardly’ and ‘outer’, ‘outwardly’ refer to directions toward and away from, respectively, a designated centreline or a geometric centre of an element being described (e.g. central axis), the particular meaning being readily apparent from the context of the description.
[0037] Further, relative positional terms, such as, ‘distal’, ‘proximal’, ‘lateral’ and ‘medial’ are understood in their normal meaning and in relation to a specific element being described. In particular, these terms designate directions in relation to the tool or user end, e.g. proximal is in a direction towards the installation tool or user, wherein distal refers to the direction away from the installation tool or user.
[0038] Further, as used herein, the terms ‘connected’, ‘attached’, ‘coupled’, ‘mounted’ are intended to include direct connections between two members without any other members interposed therebetween, as well as, indirect connections between members in which one or more other members are interposed therebetween. The terminology includes the words specifically mentioned above, derivatives thereof, and words of similar import.
[0039] Further, unless otherwise specified, the use of ordinal adjectives, such as, ‘first’, ‘second’, ‘third’ etc. merely indicate that different instances of like objects are being referred to and are not intended to imply that the objects so described must be in a given sequence, either temporally, spatially, in ranking or in any other manner.
[0040] Referring now to
[0041] A coupling member 6 is operably coupleable between the first and second receptacle 1, 2 so as to fluidly sealingly connect the two receptacles 1, 2 and provide a fluid passage between the first and second receptacle 1, 2. A self-sealing dispensing valve 4 is provided within the fluid passage of the coupling member 6 allowing selective bi-directional fluid flow between the first and second receptacle 1, 2.
[0042]
[0043] The side wall 41 may further comprise at least two elongated side protrusions 44 to also provide for better positioning and retention of the valve 4 inside the housing 5. A resilient membrane 45 of the valve 4 is provided with three radially arranged slits 46 forming flaps 47. At a predetermined fluid pressure, the flaps 47 open and the fixative liquid passes through the valve 4.
[0044] However, it is understood by the person skilled in the art that any suitable number of slits and flaps may be used to provide a bidirectional valve that is actuatable at a predetermined fluid pressure. It is understood that the slits are formed by cutting through the membrane 45 without removing any material therefrom.
[0045] When in a closed position, the flaps 47 abut closely to one another, preventing leakage of the liquid therethrough. In order to open the valve 4, a suitable pressure is applied to the resilient walls of one of the receptacles 1, 2 increasing the internal fluid pressure and forcing the liquid through the valve 4 by pushing the flaps 47 outwardly into the direction of the other receptacle 1, 2.
[0046] When the pressure is released, the resilient flaps 47 of the membrane 45 move back to a flat closed position, thus preventing fluid to pass through. The valve 4 may be made of a resilient inert material, such as silicone, though, any other suitable resilient thermoplastic polymers can be used.
[0047] The coupling member 6 of the example embodiment comprises an internal thread 10 adapted to lockingly engage with a corresponding threaded neck 7, 8 of a respective receptacle 1, 2.
[0048] Furthermore, as shown in
[0049] The barrier member or grid 9 may have a pre-determined mesh size chosen in such a way that the biopsy specimen (e.g. taken from a patient) cannot pass through the openings of the grid 9. Preferably, the mesh size is between 100 and 1000 microns, as this size is sufficient to retain most biological samples received for tissue processing. However, any other suitable mesh size may be used.
[0050] The barrier member 9 of the coupling member 6 may comprise a protrusion 11 (see
[0051] Furthermore, as shown in
[0052] The operation of the container assembly according to the present invention is as follows:
[0053] Before its use, the fixative liquid 3 is placed in the second receptacle 2 of the container assembly (see
[0054] When placing a biological sample into the first receptacle 1, the first receptacle 1 is unscrewed from the coupling member 6 and the biological sample is placed onto the grid 9 (see
[0055] Once the biological sample is placed on the grid 9 (see
[0056] In order to remove the biological sample from the container assembly, the above-mentioned operation is simply reversed, i.e. first the fixative liquid 3 is transferred from the first receptacle 1 into the second receptacle 2 by lightly pressing the walls of receptacle 1. Once the liquid is fully moved into the second receptacle 2, the first receptacle 1 can be unscrewed from the coupling member 6 to access the sample.
[0057] Typically, the biological sample will be located on the grid 9 (see
[0058] As a result, the biological sample can be transported immersed within the fixative liquid for its conservation, while the user is protected from getting into contact with the fixative liquid 3, in particular, when placing the sample into one of the receptacles 1, 2 of the container assembly, and when removing the sample from one of the receptacles 1, 2 of the container assembly.
[0059] Even though reference has been made to a specific embodiment of the invention, it is obvious for a person skilled in the art that the container assembly for biological samples described herein is susceptible to numerous variations and modifications, and that all of the details mentioned can be substituted for other technically equivalent ones without departing from the scope of protection defined by the attached claims.